Visualization of wave propagation through a 3D strand of myocardium

Naim Alper, A. Pang, B. Kogan
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引用次数: 1

Abstract

The authors present recent results obtained from simulating the action potential generation and propagation through a thin 3-D cylindrical heart muscle bundle. These results represent the first step towards obtaining a more accurate understanding of wave propagation properties through striated muscles. Using a 3-D computational grid of 32*32*128 cells, a single muscle bundle was modeled. The individual fibers and inter-fiber matter making up the bundle were treated homogeneously. Using a modified FitzHugh-Nagumo equation called the Epsilon-4 model, the authors obtained the relationship of propagation speed as a function of cross-sectional depth. The variations in speed that were observed can be explained in terms of the different wave curvatures arising from different types of boundary conditions and the geometry of the pathway. From these observations, the authors construct experiments where unidirectional blocks can occur in geometries with low excitability and no flux borders.<>
通过三维心肌链的可视化波传播
本文介绍了在三维圆柱形心肌束中模拟动作电位的产生和传播的最新结果。这些结果代表了获得更准确地理解横纹肌波传播特性的第一步。利用32*32*128个细胞的三维计算网格,对单个肌肉束进行建模。单个纤维和组成纤维束的纤维间物质均被均匀处理。利用修正的FitzHugh-Nagumo方程(称为Epsilon-4模型),作者获得了传播速度随截面深度的函数关系。观察到的速度变化可以用不同类型的边界条件和路径的几何形状引起的不同波曲率来解释。根据这些观察,作者构建了在低激发性和无通量边界的几何形状中可以出现单向块的实验
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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